The roles of grain orientation and grain boundary characteristics in the enhanced superelasticity of Cu71.8Al17.8Mn10.4 shape memory alloys

被引:88
作者
Liu, Ji-Li [1 ]
Huang, Hai-You [2 ]
Xie, Jian-Xin [1 ,2 ]
机构
[1] Univ Sci & Technol Beijing, State Key Lab Adv Met & Mat, Beijing 100083, Peoples R China
[2] Beijing Lab Metall Mat & Proc Modern Transportat, Beijing 100083, Peoples R China
基金
中国国家自然科学基金;
关键词
Continuous columnar grain; Copper based shape memory alloy; Superelasticity; Grain boundary; STRESS; TRANSFORMATIONS; TEXTURE; SIZE; PSEUDOELASTICITY; DEFORMATION; REFINEMENT; EVOLUTION;
D O I
10.1016/j.matdes.2014.07.070
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Through texture and grain boundary control by continuous unidirectional solidification, the continuous columnar-grained polycrystalline Cu71.8Al17.8Mn10.4 shape memory alloys were prepared and possess a strong < 001 > texture along the solidification direction and straight low-energy grain boundary. The alloys show excellent superelasticity of 10.1% improved from 3% for ordinary polycrystalline counterpart and with a tiny residual strain of less than 0.3% after unloading. There are some reasons for the enhanced superelasticity: (1) The martensitic transformation of all grains with strong < 001 >-oriented texture occur at the same time under the tensile loading, which can avoid the significant stress concentration problem and transformation strain incompatibility at the grain boundaries due to the high elastic anisotropy in ordinary polycrystalline alloy. (2) High phase transformation strain can be obtained along < 001 > grain orientation. (3) Straight low-energy grain boundary and the absence of grain boundary triple junctions of continuous columnar-grained polycrystals can significantly reduce the blockage of martensitic transformation at the grain boundaries. These results provide a reference to structure design of high-performance polycrystalline Cu-based shape memory alloys. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:427 / 433
页数:7
相关论文
共 28 条
[1]   Size effects in shape memory alloy microwires [J].
Chen, Ying ;
Schuh, Christopher A. .
ACTA MATERIALIA, 2011, 59 (02) :537-553
[2]   Shape memory and superelasticity in polycrystalline Cu-Al-Ni microwires [J].
Chen, Ying ;
Zhang, Xuexi ;
Dunand, David C. ;
Schuh, Christopher A. .
APPLIED PHYSICS LETTERS, 2009, 95 (17)
[3]   APPLICATIONS OF DIGITAL-IMAGE-CORRELATION TECHNIQUES TO EXPERIMENTAL MECHANICS [J].
CHU, TC ;
RANSON, WF ;
SUTTON, MA ;
PETERS, WH .
EXPERIMENTAL MECHANICS, 1985, 25 (03) :232-244
[4]   Full-field strain evolution during intermartensitic transformations in single-crystal NiFeGa [J].
Efstathiou, C. ;
Sehitoglu, H. ;
Carroll, J. ;
Lambros, J. ;
Maier, H. J. .
ACTA MATERIALIA, 2008, 56 (15) :3791-3799
[5]   Stress-induced phase transformation characteristics and its effect on the enhanced ductility in continuous columnar-grained polycrystalline Cu-12 wt % Al alloy [J].
Huang, Hai-You ;
Wang, Yu ;
Xie, Jian-Xin .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2014, 596 :103-111
[6]   A review of shape memory alloy research, applications and opportunities [J].
Jani, Jaronie Mohd ;
Leary, Martin ;
Subic, Aleksandar ;
Gibson, Mark A. .
MATERIALS & DESIGN, 2014, 56 :1078-1113
[7]   Phase equilibria and Heusler phase stability in the Cu-rich portion of the Cu-Al-Mn system [J].
Kainuma, R ;
Satoh, N ;
Liu, XJ ;
Ohnuma, I ;
Ishida, K .
JOURNAL OF ALLOYS AND COMPOUNDS, 1998, 266 (1-2) :191-200
[8]   Cyclic stress-strain response of superelastic Cu-Al-Mn alloy single crystals [J].
Kato, H ;
Ozu, T ;
Hashimoto, S ;
Miura, S .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1999, 264 (1-2) :245-253
[9]   THE CRYSTALLOGRAPHY OF MARTENSITE TRANSFORMATIONS .4. BODY-CENTRED CUBIC TO ORTHORHOMBIC TRANSFORMATIONS [J].
MACKENZIE, JK ;
BOWLES, JS .
ACTA METALLURGICA, 1957, 5 (03) :137-149
[10]   ON THE ORIGIN OF INTERGRANULAR FRACTURE IN BETA-PHASE SHAPE MEMORY ALLOYS [J].
MIYAZAKI, S ;
KAWAI, T ;
OTSUKA, K .
SCRIPTA METALLURGICA, 1982, 16 (04) :431-436